• UVALive


    Time Limit: 3000MS   Memory Limit: Unknown   64bit IO Format: %lld & %llu

    Status

    Description

     

    MasterMind is a game for two players. One of them, Designer, selects a secret code. The other, Breaker, tries to break it. A code is no more than a row of colored dots. At the beginning of a game, the players agree upon the length N that a code must have and upon the colors that may occur in a code.

    In order to break the code, Breaker makes a number of guesses, each guess itself being a code. After each guess Designer gives a hint, stating to what extent the guess matches his secret code.

    In this problem you will be given a secret code tex2html_wrap_inline35 and a guess tex2html_wrap_inline37 , and are to determine the hint. A hint consists of a pair of numbers determined as follows.

    A match is a pair (i,j), tex2html_wrap_inline41 and tex2html_wrap_inline43 , such that tex2html_wrap_inline45 . Match (i,j) is called strong when i = j, and is called weak otherwise. Two matches (i,j) and (p,q) are called independent when i = p if and only if j = q. A set of matches is called independent when all of its members are pairwise independent.

    Designer chooses an independent set M of matches for which the total number of matches and the number of strong matches are both maximal. The hint then consists of the number of strong followed by the number of weak matches in M. Note that these numbers are uniquely determined by the secret code and the guess. If the hint turns out to be (n,0), then the guess is identical to the secret code.

    Input

    The input will consist of data for a number of games. The input for each game begins with an integer specifying N (the length of the code). Following these will be the secret code, represented as N integers, which we will limit to the range 1 to 9. There will then follow an arbitrary number of guesses, each also represented as N integers, each in the range 1 to 9. Following the last guess in each game will be N zeroes; these zeroes are not to be considered as a guess.

    Following the data for the first game will appear data for the second game (if any) beginning with a new value for N. The last game in the input will be followed by a single zero (when a value for N would normally be specified). The maximum value for N will be 1000.

    Output

    The output for each game should list the hints that would be generated for each guess, in order, one hint per line. Each hint should be represented as a pair of integers enclosed in parentheses and separated by a comma. The entire list of hints for each game should be prefixed by a heading indicating the game number; games are numbered sequentially starting with 1. Look at the samples below for the exact format.

    Sample Input

    4
    1 3 5 5
    1 1 2 3
    4 3 3 5
    6 5 5 1
    6 1 3 5
    1 3 5 5
    0 0 0 0
    10
    1 2 2 2 4 5 6 6 6 9
    1 2 3 4 5 6 7 8 9 1
    1 1 2 2 3 3 4 4 5 5
    1 2 1 3 1 5 1 6 1 9
    1 2 2 5 5 5 6 6 6 7
    0 0 0 0 0 0 0 0 0 0
    0

    Sample Output

    Game 1:
        (1,1)
        (2,0)
        (1,2)
        (1,2)
        (4,0)
    Game 2:
        (2,4)
        (3,2)
        (5,0)
        (7,0)

    大致题意:实现一个经典“猜数字”游戏,给定答案序列和用户猜想的序列,统计有多少数字位置正确(A),有多少数字在两个学列都出现过但位置不对(B)。输入包含多组测试数据。魅族输入第一行为序列长度N,第二行诗答案序列,接下来是若干行猜想序列。猜测序列全0时该数组数据结束。n=0时输入结束。

    思路:直接统计可得A,为了求B,对于每个数字(1~9),统计二者出现的次数c1和c2,则min(c1,c2)就是该数字对B的贡献。最后要减去A的部分。

     1 #include<stdio.h>
     2 #define MAX 1010
     3 int main()
     4 {
     5     int n,a[MAX],b[MAX];
     6     int kase=0;
     7     while(scanf("%d",&n) == 1 && n)
     8     {
     9         printf("Game %d:
    ",++kase);
    10         for(int i=0;i<n;i++)
    11             scanf("%d",&a[i]);
    12         for(;;)
    13         {
    14             int A=0,B=0;
    15             for(int i=0;i<n;i++)
    16             {
    17                 scanf("%d",&b[i]);
    18                 if(a[i]==b[i])
    19                     A++;
    20             }
    21             if(b[0]==0)
    22                 break;
    23             for(int d=1;d<=9;d++)
    24             {
    25                 int c1=0,c2=0;
    26                 for(int i=0;i<n;i++)
    27                 {
    28                     if(a[i]==d)
    29                         c1++;
    30                     if(b[i]==d)
    31                         c2++;
    32                 }
    33                 if(c1<c2)
    34                     B+=c1;
    35                 else
    36                     B+=c2;
    37             }
    38             printf("    (%d,%d)
    ",A,B-A);
    39         }
    40     }
    41     return 0;
    42 }
  • 相关阅读:
    3dmax安装、破解与插件安装--以2014为例
    两数求和java(字符串强转int型)
    《大道至简》第一章伪代码(四个小部分)
    咳咳,软工新手读《大道至简》读后感
    一:requests爬虫基础
    爬虫
    Django中ORM系统多表数据操作
    Django中ORM简介与单表数据操作
    Django初识
    jQuery基础
  • 原文地址:https://www.cnblogs.com/caterpillarofharvard/p/4231761.html
Copyright © 2020-2023  润新知